Ultra-low noise quantum memory for quasi-deterministic single photons
generated by Rydberg collective atomic excitations
- URL: http://arxiv.org/abs/2111.08598v2
- Date: Thu, 25 Nov 2021 12:27:04 GMT
- Title: Ultra-low noise quantum memory for quasi-deterministic single photons
generated by Rydberg collective atomic excitations
- Authors: Lukas Heller, Jan Lowinski, Klara Theophilo, Auxiliadora
Padr\'on-Brito, Hugues de Riedmatten
- Abstract summary: We generate single photons on demand by exciting a cold cloud of Rubidium atoms off resonantly to a Rydberg state.
We show that the single photons can be stored and retrieved with an efficiency of 21 $%$ and a noise floor of $p_n= 2.3(3) times 10-4$ per trial in the Raman quantum memory.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: We demonstrate the storage and retrieval of an on-demand single photon
generated by a collective Rydberg excitation in an ultra-low noise Raman
quantum memory located in a different cold atomic ensemble. We generate single
photons on demand by exciting a cold cloud of Rubidium atoms off resonantly to
a Rydberg state, with a generation probability up to 15 $\%$ per trial. We then
show that the single photons can be stored and retrieved with an efficiency of
21 $\%$ and a noise floor of $p_n= 2.3(3) \times 10^{-4}$ per trial in the
Raman quantum memory. This leads to a signal-to-noise ratio ranging from 11 to
26 for the retrieved single photon depending on the input photon generation
probability, which allows us to observe significant antibunching. We also
evaluate the performances of the Raman memory as built-in unbalanced temporal
beam splitter, tunable by varying the write-in control pulse intensity. In
addition, we demonstrate that the Raman memory can be used to control the
single-photon waveshape. These results are a step forward in the implementation
of efficient quantum-repeater links using single-photon sources.
Related papers
- Bandwidth-tunable Telecom Single Photons Enabled by Low-noise Optomechanical Transduction [45.37752717923078]
Single-photon sources are of fundamental importance to emergent quantum technologies.
Nano-structured optomechanical crystals provide an attractive platform for single photon generation.
Optical absorption heating has thus far prevented these systems from being widely used in practical applications.
arXiv Detail & Related papers (2024-10-14T18:00:00Z) - Purcell enhancement of single-photon emitters in silicon [68.8204255655161]
Individual spins that are coupled to telecommunication photons offer unique promise for distributed quantum information processing.
We implement such an interface by integrating erbium dopants into a nanophotonic silicon resonator.
We observe optical Rabi oscillations and single-photon emission with a 78-fold Purcell enhancement.
arXiv Detail & Related papers (2023-01-18T19:38:38Z) - On-chip quantum information processing with distinguishable photons [55.41644538483948]
Multi-photon interference is at the heart of photonic quantum technologies.
Here, we experimentally demonstrate that detection can be implemented with a temporal resolution sufficient to interfere photons detuned on the scales necessary for cavity-based integrated photon sources.
We show how time-resolved detection of non-ideal photons can be used to improve the fidelity of an entangling operation and to mitigate the reduction of computational complexity in boson sampling experiments.
arXiv Detail & Related papers (2022-10-14T18:16:49Z) - Sequential generation of multiphoton entanglement with a Rydberg
superatom [13.103939548290306]
We experimentally demonstrate an efficient approach for multi-photon generation with a Rydberg superatom.
We detect the multiphoton entanglement via converting the photon number degree to a time-bin degree.
The efficiency scaling factor for adding one photon is 0.27, surpassing previous results.
arXiv Detail & Related papers (2021-12-17T11:33:11Z) - Deterministic Time-Bin Entanglement between a Single Photon and an
Atomic Ensemble [14.48328955835803]
We report the deterministic creation of entanglement between an atomic ensemble and a single photon by harnessing Rydberg blockade.
We design a scheme that creates entanglement between a single photon's temporal modes and the Rydberg levels that host a collective excitation.
The hybrid entanglement is tested via retrieving the atomic excitation as a second photon and performing correlation measurements, which suggest an entanglement fidelity of 87.8%.
arXiv Detail & Related papers (2021-08-05T08:12:08Z) - Elimination of Noise in Optically Rephased Photon Echoes [1.5729386263718377]
We propose a noiseless photon-echo protocol based on a four-level atomic system.
A storage fidelity of 0.952 is obtained for time-bin qubits encoded with single-photon-level coherent pulses.
arXiv Detail & Related papers (2021-07-21T02:55:09Z) - Entanglement between a telecom photon and an on-demand multimode
solid-state quantum memory [52.77024349608834]
We show the first demonstration of entanglement between a telecom photon and a collective spin excitation in a multimode solid-state quantum memory.
We extend the entanglement storage in the quantum memory for up to 47.7$mu$s, which could allow for the distribution of entanglement between quantum nodes separated by distances of up to 10 km.
arXiv Detail & Related papers (2021-06-09T13:59:26Z) - Single photon randomness originating from the symmetry of dipole
emission and the unpredictability of spontaneous emission [55.41644538483948]
Quantum random number generation is a key ingredient for quantum cryptography and fundamental quantum optics.
We experimentally demonstrate quantum random number generation based on the spontaneous emission process.
The scheme can be extended to random number generation by coherent single photons with potential applications in solid-state based quantum communication at room temperature.
arXiv Detail & Related papers (2021-02-18T14:07:20Z) - Near-ideal spontaneous photon sources in silicon quantum photonics [55.41644538483948]
Integrated photonics is a robust platform for quantum information processing.
Sources of single photons that are highly indistinguishable and pure, that are either near-deterministic or heralded with high efficiency, have been elusive.
Here, we demonstrate on-chip photon sources that simultaneously meet each of these requirements.
arXiv Detail & Related papers (2020-05-19T16:46:44Z) - A cold atom temporally multiplexed quantum memory with cavity-enhanced
noise suppression [0.0]
We demonstrate a temporally multiplexed quantum repeater node in a laser-cooled cloud of $87$Rb atoms.
By embedding the atomic ensemble inside a low finesse optical cavity, the additional noise generated in multi-mode operation is strongly suppressed.
The reported capability is a key element of a quantum repeater architecture based on multiplexed quantum memories.
arXiv Detail & Related papers (2020-03-18T18:13:40Z) - On-demand indistinguishable single photons from an efficient and pure
source based on a Rydberg ensemble [48.879585399382435]
Single photons coupled to atomic systems have shown to be a promising platform for developing quantum technologies.
Yet a bright on-demand, highly pure and highly indistinguishable single-photon source compatible with atomic platforms is lacking.
In this work, we demonstrate such a source based on a strongly interacting Rydberg system.
arXiv Detail & Related papers (2020-03-04T17:16:56Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.